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Developing stable foams from polymeric surfactants for water production control.

机译:用聚合物表面活性剂开发稳定的泡沫,以控制水的产生。

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This research explores a new method using foams for water production control in an oilfield. Reducing water production during oil production is an important objective impacting the profitability of a mature oilfield. Currently practiced methods using gel or polymer based systems either offer inadequate water flow reduction or suffer problems of proper placement in the field.; Because of its properties, foam has the potential for use in water control. In this study, foams stable in presence of flowing water (washout stability) were developed using polymeric surfactants. A screening test was developed to measure the washout resistance of various conventional and polymeric surfactants. Foam from several polymeric surfactants such as triblock F108 and hydrophobically modified HMPA1 exhibited remarkable improvement in washout stability over conventional surfactants. Strong foam that offered a large resistance to flow of water was generated in a two-foot long sand pack with some of these polymeric surfactants. Again, the polymeric surfactants exhibited higher foam washout resistance than the conventional surfactants as predicted by the screening tests.; Investigation of surfactant desorption from an air-water interface using bubble shape analysis showed that this improved foam washout resistance was due to almost irreversible adsorption of polymeric surfactants. Collapse of foam from polymeric surfactants at long times in the screening test was determined to be due to hydrodynamic effects and not desorption. Also, foam washout stability with polymeric surfactants in sand pack was found to be limited by air dissolution into flowing water. Scale-up calculations for oilfield geometries showed that foam from F108 can be stable for a long enough time, even with gas dissolution, for the process to be practicable.; Foam stable to residual oil, expected in the water producing zones, was created by mixing an anionic surfactant CS-330 with nonionic F108. This is because ionic surfactants produce an electrostatic barrier that prevents entry of oil droplets into the air water interface. Flowing oil, however, produced a stable emulsion with this surfactant combination which offered a large resistance to flow. This was undesirable and was minimized by a brine flush to remove surfactant from the aqueous phase of the foam region before contact with flowing oil.
机译:这项研究探索了一种使用泡沫技术控制油田水生产的新方法。减少石油生产过程中的产水量是影响成熟油田盈利能力的重要目标。使用凝胶或聚合物基体系的当前实践方法要么不能充分减少水流量,要么存在在现场适当放置的问题。由于其特性,泡沫具有用于水控制的潜力。在这项研究中,使用聚合物表面活性剂开发了在流动水存在下稳定的泡沫(冲洗稳定性)。开发了筛选测试以测量各种常规和聚合物表面活性剂的耐洗蚀性。与常规表面活性剂相比,由多种聚合物表面活性剂(如triblock F108和疏水改性的HMPA1)制成的泡沫在冲洗稳定性方面表现出显着改善。在两英尺长的沙包中,与其中一些聚合物表面活性剂一起生成了坚固的泡沫,提供了很大的耐水流动性。再次,如筛选试验所预测的,聚合物表面活性剂显示出比常规表面活性剂更高的泡沫耐洗性。使用气泡形状分析对表面活性剂从空气-水界面脱附的研究表明,这种提高的耐泡沫冲刷性是由于聚合物表面活性剂几乎不可逆地吸附所致。在筛选测试中,泡沫长时间从聚合表面活性剂中坍塌被确定是由于流体动力学作用而不是解吸引起的。同样,发现沙包中聚合表面活性剂对泡沫的冲洗稳定性受到空气溶解到流动水中的限制。油田几何尺寸的按比例放大计算表明,F108泡沫即使在溶解气体的情况下也可以保持足够长的时间,以使该过程可行。通过将阴离子型表面活性剂CS-330与非离子型F108混合,可以在产水区产生对残余油稳定的泡沫。这是因为离子型表面活性剂会产生静电屏障,从而防止油滴进入空气水界面。然而,流动的油与这种表面活性剂组合产生了稳定的乳液,提供了很大的流动阻力。这是不希望的,并且在与流动的油接触之前通过盐水冲洗以从泡沫区域的水相中除去表面活性剂而使其最小化。

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